自推进和剪切流对准喷嘴和通道中的活性颗粒

Leonardo Dominguez Rubio, M. Potomkin, R. Baker, Ayusman Sen, L. Berlyand, I. Aranson
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引用次数: 8

摘要

活动粒子消耗储存在环境中的能量,并将其转化为机械运动。这些系统的许多潜在应用涉及它们通过通道和喷嘴的流动、挤压和沉积,例如靶向药物输送和非平衡自组装。然而,了解它们与流和边界的基本相互作用仍然不完整。本文对双氧水驱动的平行通道和喷嘴中自走金-铂纳米棒进行了实验和理论研究。系统地比较了主动(自走)杆和被动杆的性能。研究发现,在高剪切区域,大多数活性棒自对准流线,并表现出流变性(逆流游动)。相比之下,被动杆继续不受影响地移动,直到流速非常高,在这一点上,他们也开始显示一些对齐。通过计算模型描述活动性和棒流相互作用来合理化实验结果。所获得的结果提供了深入了解操纵和控制的活跃颗粒流和挤压在复杂的几何形状。
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Self‐Propulsion and Shear Flow Align Active Particles in Nozzles and Channels
Active particles consume energy stored in the environment and convert it into mechanical motion. Many potential applications of these systems involve their flowing, extrusion, and deposition through channels and nozzles, such as targeted drug delivery and out‐of‐equilibrium self‐assembly. However, understanding their fundamental interactions with flow and boundaries remain incomplete. Herein, experimental and theoretical studies of hydrogen peroxide (H2O2) powered self‐propelled gold–platinum nanorods in parallel channels and nozzles are conducted. The behaviors of active (self‐propelled) and passive rods are systematically compared. It is found that most active rods self‐align with the flow streamlines in areas with high shear and exhibit rheotaxis (swimming against the flow). In contrast, passive rods continue moving unaffected until the flow rate is very high, at which point they also start showing some alignment. The experimental results are rationalized by computational modeling delineating activity and rod‐flow interactions. The obtained results provide insight into the manipulation and control of active particle flow and extrusion in complex geometries.
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